African Journal of
Biotechnology

  • Abbreviation: Afr. J. Biotechnol.
  • Language: English
  • ISSN: 1684-5315
  • DOI: 10.5897/AJB
  • Start Year: 2002
  • Published Articles: 12487

Full Length Research Paper

Physicochemical analysis of cellulose from microalgae Nannochloropsis gaditana

BABA HAMED Samia
  • BABA HAMED Samia
  • Laboratory of aquaculture and bioremediation (AQUABIOR), Department of Biotechnology, University of Oran 1 - Ahmed Ben Bella, Algeria.
  • Google Scholar
BABA HAMED Mohamed Bey
  • BABA HAMED Mohamed Bey
  • Laboratory of aquaculture and bioremediation (AQUABIOR), Department of Biotechnology, University of Oran 1 - Ahmed Ben Bella, Algeria.
  • Google Scholar
KASSOUAR Schéhérazade
  • KASSOUAR Schéhérazade
  • Laboratory of aquaculture and bioremediation (AQUABIOR), Department of Biotechnology, University of Oran 1 - Ahmed Ben Bella, Algeria.
  • Google Scholar
ABI AYAD Sidi– Mohammed El - Amine
  • ABI AYAD Sidi– Mohammed El - Amine
  • Laboratory of aquaculture and bioremediation (AQUABIOR), Department of Biotechnology, University of Oran 1 - Ahmed Ben Bella, Algeria.
  • Google Scholar


  •  Received: 04 March 2016
  •  Accepted: 18 May 2016
  •  Published: 15 June 2016

References

Alvarez VA, Vazquez A (2006). Influence of fiber chemical modification procedure on the mechanical modification procedure on the mechanical properties and water absorption of MaterBi/sisal fiber composites. Compos. Part A Appl. Sci. Manuf. 37(10):1672-1680
Crossref

 

Andersen RA, Brett RW, Potter D, Sexton JP (1998). Phylogeny of the Eustigmatophyceae based upon 18SrRNA gene, with emphasis on Nannochloropsis. Protist 149:61-74.
Crossref

 
 

Converti A, Casazza AA, Ortiz EY, Perego P, Del Borghi M (209). Effect of temperature and nitrogen concentration on the growth and lipid content of Nannochloropsisoculata and Chlorella vulgaris for biodiesel production. J. Chem. Eng. Process. 48:1146-1151

 
 

Bondioli P, Della Bella L, Rivolta G, ChiniZittelli G, Bassi N, Rodolfi L, Casini D, Prussi M, Chiaramonti D, Tredici MR (2012). Oil production by the marine microalgae Nannochloropsis sp. F&M-M24 and Tetraselmissuecica F&M-M33. J. Bioresour. Technol. 114:567-672.
Crossref

 
 

Demirbas MF (2011). Biofuels from algae for sustainable development. J.Applied Energy, 88:3473-3480.
Crossref

 
 

Gaudinski JB, Dawson TE, Quideau S, Schuur EA, Roden JS, Trumbore SE, Sandquist DR, Oh SW, Wasylishen RE (2005). Comparative analysis of cellulose preparation techniques for use with 13C, 14C, AND 18O isotopic measurements. J. Anal. Chem. 77:7212-7224.
Crossref

 
 

Gouveia L (2011). Microalgae as a Feedstock for Biofuels. Springer, London. pp.1-69.
Crossref

 
 

Hibberd DJ (1981). Notes on the taxonomy and nomenclature of the algal classes Eustigmatophyceae (synonym Xanthophyceae). Bot. J. Linn. Soc. 82:93-119.
Crossref

 
 

Karlson B, Potter D, Kuylenstierna M, Andersen RA (1996). Ultrastructure, pigment composition, and 18S rRNA gene sequence for Nannochloropsisgranulata sp. nov. (Monodopsideaceae, Eustigmatophyceae), a marine ultraplankter. Phycologia 35:253-260.
Crossref

 
 

Krienitz L, Hepperle D, Stich HB, Weiler W (2000). Nannochloropsislimnetica (Eustigmatophyceae), a new species of picoplankton from freshwater. Phycologia 35:219-227.
Crossref

 
 

Leavitt SW, Danzer SR (1993). Method of batch processing small wood samples to holocellulose of stable-carbon isotope analysis. Anal. Chem. 65:87-89.
Crossref

 
 

Lubian LM (1982). Nannochloropsis gaditana spec. nov., una nueva Eustigmatophyceae marina. Lazaroa 4:287-293.

 
 

Moon RJ, Martini A, Nairn J, Simonsen J, Youngblood J (2011). Cellulose nanomaterials review: structure, properties and nanocomposites. Chem. Soc. Rev. 40(7):3941-3994.
Crossref

 
 

Morán JI, Alvarez VA, Cyras VP, Vázquez A (2008). Extraction of cellulose and preparation of nanocellulose from sisal fibers. Cellulose 15:149-159.
Crossref

 
 

Nelson ML, O'Connor RT (1964). Relation of certain infrared bands to cellulose crystallinity and cristal lattice type. Part II: a new infrared ratio for estimation of crystallinity in cellulose I and II. J. Appl. Polym. Sci. 8(3):1328-1341

 
 

Oh SY, Yoo DI, Shin Y, Seo G (2005). FTIR analysis of celluloses treated with sodium hydroxide and carbon dioxide. J. Carbohydr. Res. 340:417-428.
Crossref

 
 

Pal D, Khozin-Goldberg I, Cohen Z, Boussiba S (2011). The effect of light, salinity, and nitrogen availability on lipid production by Nannochloropsis sp. Appl. Microbiol. Biotechnol. 90:1429-1441.
Crossref

 
 

Rodolfi L, Chini-Zittelli G, Bassi N, Padovani G, Biondi N, Bonini G, Tredici M (2009). Microalgae for oil: strain selection,induction of lipid synthesis and outdoor mass cultivation in a low cost photobioreactor. J. Biotechnol. Bioeng 102:100-112.
Crossref

 
 

Scholz MJ, Weiss TL, Jinkerson RE, Jing J, Roth R, Goodenough U, Posewitz MC, Gerken HG (2014). Ultrastructure and composition of the Nannochloropsisgaditana cell wall. Eukaryot. Cell 13(11):1450-1464.
Crossref

 
 

Starkenburg SR, Kwon KJ, Jha RK, McKay C, Jacobs M, Chertkov O, Twary S, Rocap G, Cattolico RA (2014). A pangenomic analysis of the Nannochloropsisorganellar genomes reveals novel genetic variations in key metabolic genes. BMC Genomics 15:212.
Crossref

 
 

Suda S, Atsumi M, Miyashita H (2002). Taxonomic characterization of a marine Nannochloropsisspecies, N. oceanicasp. nov. (Eustigmatophyceae). Phycologia 41:273-279.
Crossref

 
 

Yang H, Yan R, Chen H, Dong HL, Zheng C (2007). Characteristics of hemicelluloses, cellulose and lignin pyrolysis. Fuel 86:1781-1788.
Crossref